TY - JOUR
T1 - Highly efficient transverse thermoelectric devices with Re4Si7crystals
AU - Scudder, Michael R.
AU - He, Bin
AU - Wang, Yaxian
AU - Rai, Akash
AU - Cahill, David G.
AU - Windl, Wolfgang
AU - Heremans, Joseph P.
AU - Goldberger, Joshua E.
N1 - Primary funding for this work including synthesis, theory, and transport measurements (M. R. S., J. E. G., Y. W., and W. W.) was provided by AFOSR project no. FA9550-18-1-0335 and DOE grant number DE-SC0020923 (J. P. H.). Funding for thermal conductivity measurements (A. R., D. G. C.) and transport measurements (B. H.) was provided by NSF EFRI-1433467. This material is based upon single crystal growth supported by the: National Science Foundation (Platform for the Accelerated Realization, Analysis, and Discovery of Interface Materials (PARADIM)) under Cooperative Agreement No. DMR-1539918. Computations were performed on the machines of the Ohio Supercomputer Center under project no. PAS0072.
PY - 2021/7
Y1 - 2021/7
N2 - The principal challenges in current thermoelectric power generation modules are the availability of stable, diffusion-resistant, lossless electrical and thermal metal-semiconductor contacts that do not degrade at the hot end nor cause reductions in device efficiency. Transverse thermoelectric devices, in which a thermal gradient in a single material induces a perpendicular voltage, promise to overcome these problems. However, the measured material transverse thermoelectric efficiencies, zxyT, of nearly all materials to date has been far too low to confirm these advantages in an actual device. Here, we show that single crystals of Re4Si7, an air-stable, thermally robust, layered compound, have a transverse zxyT of 0.7 ± 0.15 at 980 K, a value that is on par with existing commercial longitudinal theremoelectrics today. Through constructing and characterizing a transverse power generation module, we prove that extrinsic losses through contact resistances are minimized in this geometry, and that no electrical contacts are needed at the hot side. This excellent transverse thermoelectric performance arises from the large, oppositely signed in-plane p-type and cross-plane n-type thermopowers. These large anisotropic thermopowers arise from thermal population of the highly anisotropic valence band and isotropic conduction band in this narrow gap semiconductor. Overall, this work establishes Re4Si7 as the "gold-standard"of transverse thermoelectrics, allowing future exploration of unique device architectures for waste heat recovery.
AB - The principal challenges in current thermoelectric power generation modules are the availability of stable, diffusion-resistant, lossless electrical and thermal metal-semiconductor contacts that do not degrade at the hot end nor cause reductions in device efficiency. Transverse thermoelectric devices, in which a thermal gradient in a single material induces a perpendicular voltage, promise to overcome these problems. However, the measured material transverse thermoelectric efficiencies, zxyT, of nearly all materials to date has been far too low to confirm these advantages in an actual device. Here, we show that single crystals of Re4Si7, an air-stable, thermally robust, layered compound, have a transverse zxyT of 0.7 ± 0.15 at 980 K, a value that is on par with existing commercial longitudinal theremoelectrics today. Through constructing and characterizing a transverse power generation module, we prove that extrinsic losses through contact resistances are minimized in this geometry, and that no electrical contacts are needed at the hot side. This excellent transverse thermoelectric performance arises from the large, oppositely signed in-plane p-type and cross-plane n-type thermopowers. These large anisotropic thermopowers arise from thermal population of the highly anisotropic valence band and isotropic conduction band in this narrow gap semiconductor. Overall, this work establishes Re4Si7 as the "gold-standard"of transverse thermoelectrics, allowing future exploration of unique device architectures for waste heat recovery.
UR - https://www.scopus.com/pages/publications/85110910918
UR - https://www.scopus.com/pages/publications/85110910918#tab=citedBy
U2 - 10.1039/d1ee00923k
DO - 10.1039/d1ee00923k
M3 - Article
AN - SCOPUS:85110910918
SN - 1754-5692
VL - 14
SP - 4009
EP - 4017
JO - Energy and Environmental Science
JF - Energy and Environmental Science
IS - 7
ER -